您好,欢迎访问仪器信息网
注册
TA仪器

关注

已关注

白金20年 白金

已认证

粉丝量 0

400-601-1998

仪器信息网认证电话,请放心拨打

当前位置: TA仪器 > 解决方案 > 用旋转流变仪表征硬质PVC熔体的粘弹性

用旋转流变仪表征硬质PVC熔体的粘弹性

2008/07/09 18:35

阅读:1625

分享:
应用领域:
发布时间:
2008/07/09
检测样品:
检测项目:
浏览次数:
1625
下载次数:
参考标准:

方案摘要:

对高分子材料常常用熔体流动速率(熔融指数MI)表示材料熔体的流动性,这种测试完全忽略了材料的流动模型,所以对每一个被研究的材料所施加应变历史都不相同。这种单点的数值是粘性和弹性共同贡献的结果。这种完全经验的数值完全没有定义确定的变形,一般而言仅仅作为材料的等级或窗口数值。由于其测量方法的限制,它不可能区分粘性和弹性。很多情况下具有同样MI的材料却表现出截然不同的加工性能。所以熔体流动速率(MI)测试只能用于质量控制,它无法提供材料的基本性能信息或于加工过程相关联。 不过在控制应力/应变流变仪上的动态测试对材料流动行为可以提供非常有价值的信息。流变仪可以通过单一实验准确的测得弹性和粘性响应。 我们研究的样品为三种硬质PVC样品,分别以A,B和C样品来标记。每一种样品PVC样品在稳定剂类型和浓度及基本PVC树脂类型等方面均有明显的不同。

产品配置单:

分析仪器

TA仪器ARES-G2 高级流变仪

型号: ARES-G2

产地: 美国

品牌: TA 仪器

面议

参考报价

联系电话

下载本篇解决方案:

资料文件名:
资料大小
下载
用旋转流变仪表征硬质PVC熔体的粘弹性
173KB
相关仪器

更多

TA仪器ARES-G2 高级流变仪

型号:ARES-G2

面议

ElectroForce®5500系列机械测试仪

型号:ElectroForce®5500

面议

ElectroForce®3300系列机械测试仪

型号:ElectroForce®3300

面议

相关方案

利用微量热技术研究病毒结构与宿主细胞受体结合反应

2019年底在武汉爆发的新冠肺炎(2019 novel coronavirus disease, COVID-19)造成国内外乃至全球的大冲击,无论是医药、经济、贸易及各产业体系均受到巨大考验。藉由全球科学家们日以继夜的努力研究,发现新冠肺炎可能的致病基理;其中较为关键的是新冠病毒感染主要是藉由新冠病毒上的S蛋白(spike protein),专一性的识别攻击人类细胞受体ACE2 (angiotensin converting enzyme 2)进而引起后续的反应。相较于同是冠状病毒的SARS,COVID-19识别人类细胞受体的专一性更强高出20倍1-3。鉴于新冠肺炎启发,本文将回顾利用等温滴定量热法(isothermal titration calorimetry, ITC)及差式扫描量热法(differential scanning calorimetry, DSC)研究病毒相关的技术文献。期望能对抗病毒药物开发、疫苗、检验试剂及基础研究等领域,提供有用的信息。

医疗/卫生

2020/03/16

等温量热法研究水泥水化

Cement is a fnely ground powder of burned limestone. It reacts readily with water (hydrates) to form a solid material, known as hardened cement paste. When cement is mixed together with rock aggregate, sand and filler materials, it forms concrete. Cement is one of the most important base materials in general use in the construction industry. The optimization of concrete with respect to frost resistance, durability, chemical resistance etc. is of great importance.

建材/家具

2019/10/10

等温微量热法研究生物制品长时间稳定性评价

The fled of biologics, i.e. proteins, particularly monoclonal antibodies (mAbs), as pharmaceutical drugs, is the fastest growing segment in the biopharmaceutical industry. Therapeutic formulations of monoclonal antibodies usually require concentrations on the order of 100 mg/mL or more, a condition that exacerbates protein denaturation and aggregation tendencies. Selecting the monoclonal antibody with the best denaturation/aggregation profile and identifying the solution conditions (formulation) that maximize the long term stability of the antibody are major goals in the development process. To accomplish these goals, researchers routinely measure different aspects of protein denaturation and aggregation using various complementary or orthogonal techniques. Some techniques measure the conformational stability of the protein (e.g., differential scanning calorimetry, differential scanning ?uorometry, isothermal chemical denaturation) and other techniques measure aggregation after lengthy sample incubation (e.g., size exclusion chromatography, light scattering). Since the expected long term stability is longer than one year, incubation times are usually reduced by accelerating denaturation/aggregation process by, for example, increasing the incubation temperature or stressing the sample in different ways. It would be highly desirable for a more efficient development of new therapeutic mAbs, to have access to a technique that provides the rate of denaturation/aggregation fast and accurately. In this technical note, we introduce the Thermal Activity Monitor (TAM) as a way to measure the rates of denaturation and aggregation of monoclonal antibodies and other proteins at constant temperature.

生物产业

2019/10/10

等温微量热仪及生物膜:可利用的生物膜生长代谢能量检测工具

Biofilms are defined as “bacteria growing on a surface as single or multi-layered communities”. Over the past several years the importance of biofilms in research has been increasingly growing as scientists realized that many, if not a large majority, of microorganisms exist naturally as biofilms. Indeed, biofilms studies are common in water science (natural waters or waste waters), environmental studies (biofilm formation on rocks), material science (antifouling surfaces) and finally medical or biomedical studies (infections, implantology). The study of biofilms has evolved with the development of many staining, molecular, or microscopy techniques. However, most of these techniques are destructive and therefore only provide endpoint measurements. Consequently, the metabolism and the dynamic behavior of biofilms remains mostly inaccessible to researchers. In this context, isothermal microcalorimetry is a valuable tool enabling investigation of development and metabolic activities of growing or mature biofilms. Several techniques combined with an isothermal calorimeter can be used to study biofilms and this application note aims at summarizing these techniques and providing some tips and tricks.

生物产业

2019/10/10

推荐产品
供应产品

TA仪器

查看电话

沟通底价

提交后,商家将派代表为您专人服务

获取验证码

{{maxedution}}s后重新发送

获取多家报价,选型效率提升30%
提交留言
点击提交代表您同意 《用户服务协议》 《隐私政策》 且同意关注厂商展位
联系方式:

公司名称: TA仪器

公司地址: 上海市浦东新区东育路255弄5号前滩世贸中心一期B座23楼01单元 联系人: 丁女士 邮编: 200126 联系电话: 400-601-1998

友情链接:

仪器信息网APP

展位手机站